Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I am working on a TV-guide app, and am trying to get the nearest 3 dates from an NSArray with NSDictionary's. So far so good, but I have been trying to figure out how I can do this the best way using as little memory as possible and with as little code (hence decreasing the likelihood of bugs or crashes). The array is already sorted.

I have a dictionary with all the channels shows for one day. The dictionary withholds an NSDate (called date).
Lets say a channel has 8 shows and the time is now 11:45. show #3 started at 11:00 and ends at 12:00, show #4 starts at 12:00 and ends at 13:00, show #5 at 13:00 to 14:00 ect.
How could I fetch show #3 (which started in the past!), #4 and #5 the fastest (memory wise) and easiest from my array of dictionaries?

Currently I am doing a for loop fetching each dictionary, and then comparing the dictionaries date with the current date. And thats where I am stuck. Or maybe I just have a brain-fag.

My current code (after a while of testing different things):

- (NSArray*)getCommingProgramsFromDict:(NSArray*)programs amountOfShows:(int)shows
    int fetched = 0;
    NSMutableArray *resultArray = [[NSMutableArray alloc] init];
    NSDate *latestDate = [NSDate date];

    for (NSDictionary *program in programs)
        NSDate *startDate = [program objectForKey:@"date"];

        NSLog(@"Program: %@", program);
        switch ([latestDate compare:startDate]) {
            case NSOrderedAscending:
                NSLog(@"latestDate is older, meaning the show starts in the future from latestDate");
                // do something
            case NSOrderedSame:
                NSLog(@"latestDate is the same as startDate");
                // do something
            case NSOrderedDescending:
                NSLog(@"latestDate is more recent, meaning show starts in the past");
                // do something

        // Now what?

    return resultArray;

I am writing it for iOS 5, using ARC.

share|improve this question

3 Answers 3

up vote 1 down vote accepted

After your EDIT and explanation, here is another answer, hopefully fitting your question better.

The idea is to find the index of the show that is next (startDate after now). Once you have it, it will be easy to get the show at the previous index (on air) and the 2 shows after it.

NSUInteger indexOfNextShow = [arrayOfShows indexOfObjectPassingTest:^BOOL(id program, NSUInteger idx, BOOL *stop) {
    NSDate* startDate = [program objectForKey:@"date"];
    return ([startDate timeIntervalSinceNow] > 0); // startDate after now, so we are after the on-air show

At that stage, indexOfNextShow contains the index of the show in your NSArray that will air after the current show. Thus what you want according to your question is objects at index indexOfNextShow-1 (show on air), indexOfNextShow (next show) and indexOfNextShow+1 (show after the next).

// in practice you should check the range validity before doing this
NSIndexSet* indexes = [NSIndexSet indexSetWithIndexesInRange:NSMakeRange(indexOfNextShow-1,3)];
NSArray* onAirShowAnd2Next = [arrayOfShows objectsAtIndexes:indexes];

Obviously in practice you should add some verifications (like indexOfNextShow being >0 before trying to access object at index indexOfNextShow-1 and indexOfNextShow+1 not being past the total number of shows in your array).

The advantage of this is that since your array of shows is sorted by startDate already, indexOfObjectPassingTest: returns the first object passing the test, and stop iterating as soon as it has found the right object. So this is both concise, easy-to-read code and relatively efficient.


share|improve this answer
That seems about right, I tried it as well.. but it seems that iOS5 (ARC) doesn't like it. I get the error message incompatible block pointer types sending 'void (^)(__strong id, NSUInteger, BOOL *)' to parameter of type 'BOOL (^)(__strong id, NSUInteger, BOOL *)' [3]". Also, did I understand it correctly, you missed ]; at the end? –  Paul Peelen Oct 1 '11 at 21:39
I removed my other comment. This also doesn't work for me. Same error. Googleing on indexOfObjectPassingTest but nothing that pops up that helps. Weird. –  Paul Peelen Oct 1 '11 at 21:52
Oh yeah sorry didn't test my code. You're right about the missing ]. Also the other problem is not related to iOS5 or ARC. The issue is that my block didn't return a value (I forgot the return YES statement) so the compiler asserts the block returns void whereas it expects a block that returns a BOOL (according to the indexOfObjectPassingTest: method signature). I just edited my code to fix these issues, simplifying the block at the same time (indexOfObjectPassingTest automatically stops at first match anyway, so I'm not sure *stop is needed in the case of that method) –  AliSoftware Oct 1 '11 at 22:23
doesn't indexOfPassingTest have to iterate over the set internally? Why iterate and test each item when time is easy to offset? If you can create indexes into the sorted list, you can jump right to now (or any other time marker) instantly. –  bryanmac Oct 1 '11 at 23:03
@AliSoftware I got such an idea when I compared it with google results. But I made a wrong return in my code when I tested it. I'll test it again. –  Paul Peelen Oct 2 '11 at 5:50

I'm not sure I understood your model structure, you have an NSArray of shows, each show being a NSDictionary holding the NSDate of the show along with other info, right?

One idea then is to sort this NSArray of show according to the distance between the start time of the show and now.

NSArray* shows = ... // your arraw of NSDictionaries representing each show
NSArray* sortedShows = [shows sortedArrayUsingComparator:^(id show1, id show2) {
    NSTimeInterval ti1 = fabs([[show1 objectForKey:@"startDate"] timeIntervalSinceNow]);
    NSTimeInterval ti2 = fabs([[show2 objectForKey:@"startDate"] timeIntervalSinceNow]);
    return (NSComparisonResult)(ti1-ti2);

Then of course it is easy at that point to only take the 3 first shows of the sortedShows array.

If I've misunderstood your model structure, please edit your question to specify it, but I'm sure you can adapt my code to fit your model then

share|improve this answer
Thanks! I think you did missunderstood me, so I updated my question. The array is already sorted by the start order of the shows. What I need is the show that is currently on the air + the two next shows. So, if the time right now would be 11:45, I'de like the result of the show that started 11:00 to 12:00 + the next two shows. –  Paul Peelen Oct 1 '11 at 21:09
Ok then I have written another answer (as it is a completely different solution, I think it is better than editing my original answer) that hopefully answers your question better –  AliSoftware Oct 1 '11 at 21:25
I believe this will still have to iterate the entire data set. The fastest possible algorithm would jump straight to the current time slots index and iterate only 3 times to find the next three. –  bryanmac Oct 1 '11 at 22:15
Yeah I didn't realized the list of shows were already sorted, that's exactly why, since Paul edited its question and explained my this better, I proposed a better solution that is even more concise and also effective as it won't iterate thru all the shows anymore. –  AliSoftware Oct 1 '11 at 22:29

The question asks for the "fastest (memory wise)". Are you looking for the fastest or the most memory/footprint conscious? With algorithms there is often a space vs. time tradeoff so as you make it faster, you typically do it by adding indexes and other lookup data structures which increase the memory footprint.

For this problem the straight forward implementation would be to iterate through each channel and each item comparing each against the top 3 held in memory. But that could be slow.

With additional storage, you could have an additional array which indexes into time slots (one per 15 minutes granularity good enough?) and then daisy chain shows off of those time slots. Given the current time, you could index straight into the current times slot and then look up the next set of shows. The array would have pointers to the same objects that the dictionaries are pointing to. That's an additional data structure to optimize one specific pattern of access but it does it at a cost - more memory.

That would increase your foot print but would be very fast since it's just an array index offset.

Finally, you could store all your shows in a sqlite database or CoreData and solve your problem with one query. Let the sql engine do the hard work. that wold also keep your memory foot print reasonable.

Hope that sparks some ideas.


A crude example showing how you can construct a look table - an array with slots for every 15 minutes. It's instant to jump to the current time slot since it's just an array offset. Then you walk the absolute number of walks - the next three and you're out. So, it's an array offset with 3 iterations.

Most of the code is building date - the lookup table, finding the time slot and the loop is trivial.

NSInteger slotFromTime(NSDate *date)
    NSLog(@"date: %@", date);

    NSDateComponents *dateComponents = [[NSCalendar currentCalendar] components:(NSHourCalendarUnit | NSMinuteCalendarUnit) fromDate:date];
    NSInteger hour = [dateComponents hour];
    NSInteger minute = [dateComponents minute];
    NSInteger slot = (hour * 60 + minute)/15;
    NSLog(@"slot: %d", (int)slot);

    return slot;

int main (int argc, const char * argv[])
    // An array of arrays - the outer array is an index of 15 min time slots.
    NSArray *slots[96];
    NSDate *currentTime = [NSDate date];
    NSInteger currentSlot = slotFromTime(currentTime);

    // populate with shows into the next few slots for demo purpose
    NSInteger index = currentSlot;
    NSArray *shows1 = [NSArray arrayWithObjects:@"Seinfeld", @"Tonight Show", nil];
    slots[++index] = shows1;
    NSArray *shows2 = [NSArray arrayWithObjects:@"Friends", @"Jurassic Park", nil];
    slots[++index] = shows2; 

    // find next three -jump directly to the current slot and only iterate till we find three.
    // we don't have to iterate over the full data set of shows
    NSMutableArray *nextShow = [[NSMutableArray alloc] init];
    for (NSInteger currIndex = currentSlot; currIndex < 96; currIndex++)
        NSArray *shows = slots[currIndex];
        if (shows)
            for (NSString *show in shows)
                NSLog(@"found show: %@", show);
                [nextShow addObject:show];
                if ([nextShow count] == 3) 

        if ([nextShow count] == 3) 

    return 0;

This outputs:

2011-10-01 17:48:10.526 Craplet[946:707] date: 2011-10-01 21:48:10 +0000
2011-10-01 17:48:10.527 Craplet[946:707] slot: 71
2011-10-01 17:48:14.335 Craplet[946:707] found show: Seinfeld
2011-10-01 17:48:14.336 Craplet[946:707] found show: Tonight Show
2011-10-01 17:48:21.335 Craplet[946:707] found show: Friends
share|improve this answer
Thanks for your reply. I think the 2nd option you wrote would be suitable for me (allthough I don't fully understand it, yet). A SQL lite option wouldn't be that good since the apps (currently) does use core-data. It fetches the data from an external service and keeps it in its memory. The first is the one I was thinking of, but don't see that its so good (hence, slow). Could you give me a small code example of exactly what you mean with #2 so I understand you correctly? –  Paul Peelen Oct 1 '11 at 21:02
sure - give me a minute –  bryanmac Oct 1 '11 at 21:07
Awesome! Now I understand what you mean. Cool. I'll give it a try! –  Paul Peelen Oct 1 '11 at 22:03
Nice solution ;) Anyway, be careful if you have shows that runs across multiple days (slots cycling) or if your array contains a list of shows of different days (slot overload). –  AliSoftware Oct 1 '11 at 22:44
Good points. One possible solution would be to register it in every slot it consumes –  bryanmac Oct 1 '11 at 23:06

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.